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Adjoint-based estimation and control of spatial, temporal and stochastic approximation errors in unsteady flow simulations

机译:非伴随流动模拟中基于伴随的空间,时间和随机近似误差的估计和控制

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摘要

The ability to estimate various sources of numerical error and to adaptively control them is a powerful tool in quantifying uncertainty in predictive simulations. This work attempts to develop reliable estimates of numerical errors resulting from spatial, temporal and stochastic approximations of fluid dynamic equations using a discrete adjoint approach. Each source of error is isolated and the accuracy of the error estimation is verified. When applied to unsteady flow simulations of vertical axis wind turbines (VAWT), the procedure demonstrates good recovery of discretization errors to provide accurate estimate of the objective functional. The framework is then applied to a VAWT simulation with inherent stochasticity and is confirmed to effectively estimate errors in computing statistical quantities of interest. The ability to use these stochastic error estimates as a basis for adaptive sampling is also presented. Predictive science is typically constrained by finite computational resources and this work demonstrates the viability of adjoint-based approaches to budget available computational resources to effectively pursue uncertainty quantification. (C) 2015 Elsevier Ltd. All rights reserved.
机译:估计各种数字误差源并对其进行自适应控制的能力是量化预测模拟不确定性的有力工具。这项工作试图使用离散伴随方法,对由于流体动力学方程的空间,时间和随机近似而产生的数值误差进行可靠的估计。隔离每个错误源,并验证错误估计的准确性。当应用于垂直轴风力涡轮机(VAWT)的非恒定流模拟时,该程序证明了离散误差的良好恢复,可提供目标功能的准确估计。然后将该框架应用于具有固有随机性的VAWT模拟,并确认该框架可以有效地估计计算感兴趣的统计量时的误差。还介绍了使用这些随机误差估计作为自适应采样基础的能力。预测科学通常受限于有限的计算资源,这项工作证明了基于伴随的方法来预算可用的计算资源以有效地进行不确定性量化的可行性。 (C)2015 Elsevier Ltd.保留所有权利。

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